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      Plasma-induced oxygen vacancies enabled ultrathin ZnO films for highly sensitive detection of triethylamine

      , , , , , , ,
      Journal of Hazardous Materials
      Elsevier BV

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          Methods for the determination of limit of detection and limit of quantitation of the analytical methods

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            The surface and materials science of tin oxide

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              Nanostructured Materials for Room-Temperature Gas Sensors.

              Sensor technology has an important effect on many aspects in our society, and has gained much progress, propelled by the development of nanoscience and nanotechnology. Current research efforts are directed toward developing high-performance gas sensors with low operating temperature at low fabrication costs. A gas sensor working at room temperature is very appealing as it provides very low power consumption and does not require a heater for high-temperature operation, and hence simplifies the fabrication of sensor devices and reduces the operating cost. Nanostructured materials are at the core of the development of any room-temperature sensing platform. The most important advances with regard to fundamental research, sensing mechanisms, and application of nanostructured materials for room-temperature conductometric sensor devices are reviewed here. Particular emphasis is given to the relation between the nanostructure and sensor properties in an attempt to address structure-property correlations. Finally, some future research perspectives and new challenges that the field of room-temperature sensors will have to address are also discussed.
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                Author and article information

                Contributors
                Journal
                Journal of Hazardous Materials
                Journal of Hazardous Materials
                Elsevier BV
                03043894
                August 2021
                August 2021
                : 415
                : 125757
                Article
                10.1016/j.jhazmat.2021.125757
                34088211
                70c67b46-9859-404c-82e5-59298c5c4f79
                © 2021

                https://www.elsevier.com/tdm/userlicense/1.0/

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